US6878233B2 - Workpiece holding mechanism - Google Patents

Workpiece holding mechanism Download PDF

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Publication number
US6878233B2
US6878233B2 US10/343,022 US34302203A US6878233B2 US 6878233 B2 US6878233 B2 US 6878233B2 US 34302203 A US34302203 A US 34302203A US 6878233 B2 US6878233 B2 US 6878233B2
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electrode
processed
lower electrode
detection circuit
power source
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US20030145950A1 (en
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Eiji Hirose
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Tokyo Electron Ltd
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Tokyo Electron Ltd
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L21/00Processes or apparatus adapted for the manufacture or treatment of semiconductor or solid state devices or of parts thereof
    • H01L21/67Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere
    • H01L21/68Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for positioning, orientation or alignment
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L21/00Processes or apparatus adapted for the manufacture or treatment of semiconductor or solid state devices or of parts thereof
    • H01L21/67Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere
    • H01L21/683Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping
    • H01L21/6835Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping using temporarily an auxiliary support
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C16/00Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes
    • C23C16/44Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating
    • C23C16/458Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating characterised by the method used for supporting substrates in the reaction chamber
    • C23C16/4581Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating characterised by the method used for supporting substrates in the reaction chamber characterised by material of construction or surface finish of the means for supporting the substrate
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J37/00Discharge tubes with provision for introducing objects or material to be exposed to the discharge, e.g. for the purpose of examination or processing thereof
    • H01J37/02Details
    • H01J37/20Means for supporting or positioning the object or the material; Means for adjusting diaphragms or lenses associated with the support
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J37/00Discharge tubes with provision for introducing objects or material to be exposed to the discharge, e.g. for the purpose of examination or processing thereof
    • H01J37/32Gas-filled discharge tubes
    • H01J37/32009Arrangements for generation of plasma specially adapted for examination or treatment of objects, e.g. plasma sources
    • H01J37/32082Radio frequency generated discharge
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J37/00Discharge tubes with provision for introducing objects or material to be exposed to the discharge, e.g. for the purpose of examination or processing thereof
    • H01J37/32Gas-filled discharge tubes
    • H01J37/32009Arrangements for generation of plasma specially adapted for examination or treatment of objects, e.g. plasma sources
    • H01J37/32082Radio frequency generated discharge
    • H01J37/32091Radio frequency generated discharge the radio frequency energy being capacitively coupled to the plasma
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J37/00Discharge tubes with provision for introducing objects or material to be exposed to the discharge, e.g. for the purpose of examination or processing thereof
    • H01J37/32Gas-filled discharge tubes
    • H01J37/32009Arrangements for generation of plasma specially adapted for examination or treatment of objects, e.g. plasma sources
    • H01J37/32082Radio frequency generated discharge
    • H01J37/32174Circuits specially adapted for controlling the RF discharge
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L21/00Processes or apparatus adapted for the manufacture or treatment of semiconductor or solid state devices or of parts thereof
    • H01L21/67Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere
    • H01L21/683Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping
    • H01L21/6831Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping using electrostatic chucks
    • H01L21/6833Details of electrostatic chucks
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L2924/00Indexing scheme for arrangements or methods for connecting or disconnecting semiconductor or solid-state bodies as covered by H01L24/00
    • H01L2924/19Details of hybrid assemblies other than the semiconductor or other solid state devices to be connected
    • H01L2924/1901Structure
    • H01L2924/1904Component type
    • H01L2924/19041Component type being a capacitor
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T279/00Chucks or sockets
    • Y10T279/23Chucks or sockets with magnetic or electrostatic means

Definitions

  • the present invention relates to a holding mechanism of an object to be processed, which is mounted in a processing chamber of a plasma processing apparatus in order to hold the object to be processed.
  • an electrostatic chuck using electrostatic adsorption is used in a holding mechanism of an object to be processed such as a semiconductor wafer in a plasma processing apparatus, and the electrostatically adsorbed object to be processed is subjected to a predetermined plasma process.
  • Examples of the holding mechanism of the object to be processed include two types including a type in which a high direct-current voltage is applied to an electrode plate disposed in the electrostatic chuck shown in FIG. 5 , and a type in which the electrostatic chuck is held and a high direct-current voltage is applied to an electrode for generating plasma as shown in FIG. 6 .
  • the former electrostatic chuck is referred to as a separated type, and the latter chuck is referred to as a coupled type.
  • the separated type of holding mechanism of the object to be processed includes an electrostatic chuck 21 which electrostatically adsorbs the object to be processed (e.g., a semiconductor wafer), and a lower electrode 22 including aluminum whose surface is alumite-processed or coated with an insulating material such as ceramic.
  • An upper electrode 23 is disposed above, parallel to, and opposite to the lower electrode 22 at a predetermined interval.
  • the lower electrode 22 is connected to a high-frequency power source 25 via a matching circuit 24 , high-frequency power is applied to the lower electrode 22 from the high-frequency power source 25 , and plasma P is generated between the lower electrode 22 and upper electrode 23 .
  • This plasma P is collected onto a semiconductor wafer W via a focus ring 22 a disposed in an outer peripheral edge of the lower electrode 22 , and the semiconductor wafer is subjected to a plasma processing such as etching.
  • the electrostatic chuck 21 is formed by insulating materials such as a polyimide-based resin and ceramics, and an electrode plate 21 a is disposed inside the chuck.
  • the electrode plate 21 a is connected to a high-voltage power source 27 which applies a direct-current voltage via a filter circuit 26 , the high-voltage power source 27 applies a high direct-current voltage to the electrode plate 21 a , and the semiconductor wafer is electrostatically adsorbed onto a front surface of the electrostatic chuck 21 .
  • the filter circuit 26 includes, for example, a coil 26 a , resistor 26 b , and capacitor 26 c , filters a high-frequency current from the high-frequency power source 25 , and prevents the high-frequency current from turning onto a high-voltage power source 27 side.
  • the lower electrode 22 is connected to a detection circuit 28 .
  • This detection circuit 28 measures a direct-current (DC) component generated in the lower electrode 22 to which the high-frequency power is applied.
  • the circuit includes a coil 28 a , resistor 28 b , and capacitor 28 c , and measures the direct-current component of a point A.
  • the circuit cuts the high-frequency current from the high-frequency power source 25 , and prevents the high-frequency current from turning into the point A.
  • the coupled type of holding mechanism of the object to be processed includes a constitution similar to that of the above-described separated type of holding mechanism of the object to be processed except that the lower electrode 22 also functions as the electrode plate of the electrostatic chuck 21 . That is, the lower electrode 22 is connected to both the high-frequency power source 25 and high-voltage power source 27 , and the high-frequency power source 25 applies the high-frequency power to the lower electrode 22 to generate the plasma P between the upper electrode 23 and lower electrode. Furthermore, the high-voltage power source 27 applies the high direct-current voltage to the lower electrode 22 to electrostatically charge the electrostatic chuck 21 and to electrostatically adsorb the semiconductor wafer.
  • the detection circuit 28 also has a function as a static eliminator circuit which eliminates charges remaining in capacitor components in the lower electrode 22 and matching circuit 24 .
  • a property as the static eliminator circuit is sometimes used to use the detection circuit 28 as life management means of the lower electrode 22 .
  • the surface of the lower electrode 22 is sputtered, the alumite processing is scraped and stripped off, this stripped portion forms a closed circuit between the lower electrode 22 and upper electrode 23 , and a current flows toward a detection circuit 28 side from the lower electrode 22 .
  • the stripped degree (wear degree) of the lower electrode 22 by the sputtering can be grasped by the magnitude of the measured value, and further the life of the lower electrode 22 can be managed.
  • the detection circuit 28 measures the direct-current component in the lower electrode 22 , and the direct-current component is ideally in a 0V state at times other than times when the high-frequency power is turned ON/OFF or the high voltage is turned ON/OFF. Therefore, the current flowing through the lower electrode 22 at the plasma processing time can be grasped as the current which flows through the lower electrode 22 via the stripped alumite-processed portion.
  • the separated type of holding mechanism of the object to be processed shown in FIG.
  • the detection circuit 28 functions as the static eliminator circuit, and a current i 1 flows into the detection circuit 28 from the lower electrode 22 . Therefore, a potential difference is generated between the lower electrode 22 and a focus ring 22 a by the voltage drop of the lower electrode 22 , and there has been a problem that this potential difference causes abnormal electric discharge between the lower electrode 22 and components such as the focus ring 22 a.
  • An object of the present invention is to provide a holding mechanism of an object to be processed, in which a voltage drop in an electrode can be prevented and the life of the electrode can be managed.
  • a holding mechanism of an object to be processed mounted on a plasma processing apparatus which applies high-frequency power from a high-frequency power source to one of two electrodes disposed opposite to each other to generate plasma discharge, thereby subjecting the object to be processed to a plasma processing
  • the mechanism comprising: an electrostatic chuck which is attached to the electrode connected to the high-frequency power source and which electrostatically adsorbs the object to be processed; a high-voltage power source which applies a direct-current voltage to the electrostatic chuck to generate an electrostatic adsorption force; a detection circuit to detect a direct-current component generated on the electrode, when the high-frequency power is applied to the electrode to subject the object to be processed to the predetermined plasma processing; and a changeover switch which can electrically disconnect the detection circuit from the electrode at processing time of the object to be processed and which can electrically connect the detection circuit to the electrode at detection time of the direct-current component or at non-processing time of the object to be processed.
  • a holding mechanism of an object to be processed mounted on a plasma processing apparatus which applies high-frequency power from a high-frequency power source to one of two electrodes disposed opposite to each other to generate plasma discharge, thereby subjecting the object to be processed to a plasma processing
  • the mechanism comprising: an electrostatic chuck which is attached to the electrode connected to the high-frequency power source and which electrostatically adsorbs the object to be processed; a high-voltage power source which applies a direct-current voltage to the electrode and which generates an electrostatic adsorption force in the electrostatic chuck; a detection circuit to detect a direct-current component generated on the electrode, when the high-frequency power is applied to the electrode to subject the object to be processed to the predetermined plasma processing; and a changeover switch which can electrically disconnect the detection circuit from the electrode at processing time of the object to be processed and which can electrically connect the detection circuit to the electrode at detection time of the direct-current component or at non-processing time of the object to be processed.
  • FIG. 1 is a diagram showing a constitution example of a separated type, according to a first embodiment of the present invention, of a holding mechanism of an object to be processed;
  • FIG. 2 is a diagram showing a constitution example of a coupled type, according to a second embodiment of the present invention, of the holding mechanism of the object to be processed;
  • FIGS. 3A , 3 B, 3 C are diagrams showing the relationship between the current of a high-voltage power source and the bias potential of a lower electrode in the coupled type of holding mechanism of the object to be processed shown in FIG. 2 ;
  • FIG. 4 is a diagram showing a modification example of the second embodiment shown in FIG. 2 ;
  • FIG. 5 is a constitution diagram showing one example of a related-art separated type of holding mechanism of the object to be processed.
  • FIG. 6 is a constitution diagram showing one example of a related-art coupled type of holding mechanism of the object to be processed.
  • FIG. 1 is a diagram showing a constitution example of a separated type, according to a first embodiment of the present invention, of a holding mechanism of an object to be processed.
  • a holding mechanism 10 of the object to be processed includes: a lower electrode 2 , disposed opposite to an upper electrode 7 , for generating plasma; an electrostatic chuck 1 which is disposed on the lower electrode 2 to electrostatically adsorb a semiconductor wafer W; a high-voltage power source 6 which applies a direct-current voltage for generating an electrostatic adsorption force in the electrostatic chuck 1 ; a filter circuit 5 which prevents a high-frequency current from turning toward the high-voltage power source 6 ; and a detection circuit 8 which detects a direct-current component generated in the lower electrode 2 in subjecting the semiconductor wafer W to plasma process.
  • the mechanism further includes: a high-frequency power source 4 which applies high-frequency power for generating the plasma; and a matching circuit 3 which obtains the matching property in the output of the high-frequency power source 4 and removes a reflected current from the lower electrode.
  • the lower electrode 2 is formed of aluminum whose surface is alumite-processed or coated with an insulating material such as ceramic forming a protective film, and includes a focus ring 9 in an outer peripheral edge.
  • the upper electrode 7 is disposed above the lower electrode 2 , and the lower electrode 2 and upper electrode 7 are disposed parallel to each other at a predetermined interval in a processing chamber (not shown).
  • the electrostatic chuck 1 is comprised of a chuck main body portion 1 a formed of insulating materials such as a polyimide-based resin and ceramic, and an electrode plate 1 b to which a direct-current voltage is applied from the high-voltage power source 6 .
  • a coil 5 a and resistor 5 b are connected in series between the high-voltage power source 6 and lower electrode 2
  • a grounded capacitor 5 c is connected to a connection point B, and the capacitor 5 c filters the high-frequency current from the high-frequency power source 4 and prevents the high-frequency current from turning toward the high-voltage power source 6 .
  • the detection circuit 8 is comprised of a coil 8 a , relay switch 8 b , and resistors 8 c and 8 d connected in series between the lower electrode 2 and ground, and further a grounded capacitor 8 e is connected between the coil 8 a and relay switch 8 b .
  • This relay switch 8 b is a constantly opened contact point, and a switch driving unit 10 switches on (conduction)/off (non-conduction) based on the instruction of a control unit (not shown) which controls the whole apparatus (not shown).
  • the high-voltage power source 6 applies a high voltage to the electrode plate 1 b via the filter circuit 5 .
  • a predetermined process gas is supplied into the processing chamber from a gas supply system (not shown) to hold a predetermined vacuum degree.
  • the high-frequency power source 4 applies high-frequency power to the lower electrode 2 via the matching circuit 3 and generates plasma between the lower electrode 2 and upper electrode 7 , so that the semiconductor wafer W is subjected to the predetermined plasma processing.
  • the relay switch 8 b is brought into an open state (non-conducting state), and the flow of direct current into the detection circuit 8 is cut off. Furthermore, at stop time of the plasma processing, or maintenance time of the plasma processing apparatus, the detection circuit 8 is brought into a closed state (conducting state), and the current is allowed to flow into the detection circuit 8 .
  • the relay switch 8 b of the detection circuit 8 When the plasma processing is performed under a process condition easily causing the abnormal electric discharge in this manner, the relay switch 8 b of the detection circuit 8 is opened. Therefore, the detection circuit 8 is electrically disconnected from the lower electrode 2 to cut off an input, voltage drop of the lower electrode 2 is prevented, and the abnormal electric discharge between the lower electrode 2 and the components such as the focus ring 9 can be prevented. Moreover, when the stripped degree of the alumite processing of the lower electrode 2 is to be detected during plasma processing not easily causing abnormal electric discharge, the relay switch 8 b is closed, and the detection circuit 8 is electrically connected to the lower electrode 2 .
  • a closed circuit is formed between the stripped alumite-processed portion of the lower electrode 2 and the upper electrode 7 , a current i 3 flows into the detection circuit 8 from the lower electrode 2 , and a voltage value can be detected at a measurement point A.
  • the stripped degree of the alumite-processed portion of the lower electrode 2 is grasped in accordance with the degree of increase of the voltage value, and further the life of the lower electrode 2 can be grasped and managed.
  • the relay switch 8 b is closed to connect the detection circuit 8 to the lower electrode 2 , and the detection circuit 8 is allowed to function as a static eliminator circuit.
  • FIGS. 2 and 4 A constitution example of a coupled type of holding mechanism of the object to be processed according to a second embodiment will next be described with reference to FIGS. 2 and 4 .
  • parts of the present embodiment equivalent to constituting parts shown in FIG. 1 are denoted with the same reference numerals, and description thereof is omitted.
  • the above-described first embodiment includes the constitution in which the electrode plate 1 b is disposed in the chuck main body 1 a and the direct-current voltage is applied from the high-voltage power source 6 , but the holding mechanism 20 of the object to be processed of the present embodiment includes a constitution in which the electrode plate 1 b is not disposed and the lower electrode 2 is used as the electrode plate 1 b.
  • the holding mechanism 20 of the object to be processed shown in FIG. 2 includes: the lower electrode 2 , disposed opposite to the upper electrode 7 , for generating the plasma; an electrostatic chuck 11 which is disposed on the lower electrode 2 to electrostatically adsorb the semiconductor wafer W; the high-voltage power source 6 which applies the direct-current voltage to the lower electrode 2 to generate the electrostatic adsorption force in the electrostatic chuck 11 ; the filter circuit 5 which prevents the high-frequency current from turning toward the high-voltage power source 6 ; and the detection circuit 8 which detects the direct-current component generated in the lower electrode 2 in subjecting the semiconductor wafer W to the plasma processing.
  • the mechanism further includes: the high-frequency power source 4 which applies the high-frequency power for generating the plasma; and the matching circuit 3 which obtains the matching property in the output of the high-frequency power source 4 and removes the reflected current from the lower electrode.
  • the above-described electrostatic chuck 11 is formed of insulating materials such as polyimide-based resin or ceramic.
  • the chuck is different from the electrostatic chuck 1 of the above-described first embodiment in that an electrode plate is not disposed. Therefore, the chuck is disposed on the lower electrode 2 as the electrode plate, and the direct-current voltage is applied from the high-voltage power source 6 via the lower electrode.
  • a detection circuit 12 for use in the present embodiment includes substantially the same constitution as that of the detection circuit 8 of the above-described first embodiment, and is comprised of a coil 12 a , relay switch 12 b , and resistors 12 c and 12 d connected in series between the lower electrode 2 and ground, and further a grounded capacitor 12 e is connected between the coil 12 a and relay switch 12 b .
  • This relay switch 12 b is a constantly opened contact point, and the switch driving unit 10 switches on (conduction)/off (non-conduction) based on the instruction of the control unit (not shown) which controls the whole apparatus (not shown).
  • the constitution is equal in this manner, but there is a different respect concerning function/effect.
  • the relay switch 12 b is closed, the detection circuit 12 is connected to the lower electrode 2 , the detection circuit 12 is used as a static eliminator circuit, and charging in the lower electrode 2 can be prevented.
  • the relay switch 12 b is opened, the connection of the detection circuit 12 and lower electrode 2 is canceled, the connection of the detection circuit 12 and high-voltage power source 6 is also canceled, and the function of the static eliminator circuit is stopped. This prevents the high voltage in the lower electrode 2 from dropping and can maintain the electrostatic adsorption function of the electrostatic chuck 11 .
  • the detection circuit 12 to function as a life manager of the lower electrode 2
  • the detection circuit 12 and high-voltage power source 6 form a closed circuit
  • a high output voltage from the high-voltage power source 6 is measured instead of measuring the direct-current component of the lower electrode 2 , and this constitution cannot be used as a life manager of the lower electrode 2 as such.
  • the present inventors have found that the current of the high-voltage power source 6 is closely associated with the bias potential Vdc of the lower electrode 2 .
  • the current HV[A] of the high-voltage power source 6 and bias potential Vdc of the lower electrode 2 change in synchronization with each other. It is further found that in synchronization with the application to the high-voltage power source 6 or high-frequency power source 4 , the high-voltage current HV[A] and bias potential Vdc change.
  • the lower electrode 2 and upper electrode 7 form a closed circuit via the stripped alumite-processed portion of the lower electrode 2 , a current i 4 flows into the high-voltage power source 6 from the lower electrode 2 as shown in FIG. 2 , and the current HV[A] of the high-voltage power source 6 then changes. Therefore, in the second embodiment, the detection circuit 12 monitors the current HV[A] of the high-voltage power source 6 so that the current flowing through the stripped alumite-processed portion is indirectly grasped, and the life of the lower electrode 2 can be grasped and managed in accordance with the magnitude of the current.
  • this current HV[A] can be monitored.
  • an overcurrent protection circuit 13 is disposed in a power source line of the high-voltage power source 6 .
  • This overcurrent protection circuit 13 stops the output of the high-voltage power source 6 when a predetermined or greater overcurrent is generated by the direct-current discharge.
  • a measurement circuit which measures the overcurrent is incorporated in the high-voltage power source 6 .
  • the circuit may also be disposed outside.
  • an alarm is given based on an overcurrent detection signal in the overcurrent protection circuit 13 , and the output of the high-frequency power source 4 is stopped.
  • the relay switch 12 b of the detection circuit 12 is brought into an open state. Since the detection circuit 12 is not connected to the lower electrode 2 , the high voltage of the lower electrode 2 is prevented from dropping, and the semiconductor wafer W can be prevented from being stripped from the electrostatic chuck 11 .
  • the lower electrode 2 is sputtered, and a part of the alumite processing is scraped off, a closed circuit is formed between the lower electrode 2 and upper electrode 7 , and the current HV[A] of the high-voltage power source 6 is monitored.
  • the current HV[A] is measured at the measurement point A, the life of the lower electrode 2 is grasped in accordance with the magnitude of this current HV[A], and further the life of the lower electrode 2 can be grasped and managed.
  • the relay switch 12 b is closed to connect the detection circuit 12 to the lower electrode 2 , and the detection circuit 12 is allowed to function as a static eliminator circuit.
  • the static eliminator circuit can eliminate the static electricity.
  • the overcurrent protection circuit 13 detects the overcurrent of the high-voltage power source 6 and stops the driving of the high-voltage power source 6 and high-frequency power source 4 , and the alarm can be given.
  • the relay switch 12 b is disposed to electrically disconnect the detection circuits 8 , 12 from the lower electrode 2 during a treatment in which abnormal electric discharge easily occurs and, on the other hand, to electrically connect the detection circuits 8 , 12 to the lower electrode 2 , when a direct-current component is detected and the semiconductor wafer W is not treated. Therefore, the following function/effect can be produced/obtained.
  • the relay switch 8 b of the detection circuit 8 is opened, and the detection circuit 8 is electrically disconnected from the lower electrode 2 . Therefore, voltage drop of the lower electrode 2 is prevented, and abnormal electric discharge between the lower electrode 2 and components such as the focus ring 9 can be prevented.
  • the relay switch 8 b is closed, and the detection circuit 8 is electrically connected to the lower electrode 2 . Therefore, the stripped degree of the alumite-processed portion of the lower electrode 2 is grasped in accordance with the magnitude of the voltage value at the measurement point A, and further the life of the lower electrode 2 can be grasped and managed. Moreover, life management of the lower electrode 2 under the process condition under which abnormal electric discharge easily occurs can be performed by monitoring the current HV[A] of the direct-current high-voltage power source 6 .
  • the relay switch 8 b is closed to electrically connect the detection circuit 8 to the lower electrode 2 , and the detection circuit 8 can be used as a static eliminator circuit. Therefore, charging in the lower electrode 2 at maintenance time is prevented, and an operator's short-circuit trouble can be prevented.
  • the relay switch 12 b of the detection circuit 12 opens, the detection circuit 12 is electrically disconnected from the lower electrode 2 , and the voltage drop of the high voltage of the lower electrode 2 is prevented.
  • the semiconductor wafer W can be prevented from being stripped from the electrostatic chuck 11 , and further abnormal electric discharge between the lower electrode 2 and components such as the focus ring 9 can be prevented.
  • the current HV[A] of the high-voltage power source 6 is monitored to grasp the life of the lower electrode 2 , and further the life of the lower electrode 2 can be grasped and managed.
  • the relay switch 12 b is closed to electrically connect the detection circuit 12 to lower electrode 2 , the detection circuit 12 can be allowed to function as a static eliminator circuit, and charging in the lower electrode 2 can be prevented.
  • the overcurrent protection circuit 13 is disposed in the high-voltage power source 6 of the separated type of holding mechanism 20 of the object to be processed. Therefore, even when the direct-current discharge occurs because of the high voltage of the lower electrode 2 in the stripped alumite-processed portion of the lower electrode 2 , the overcurrent protection circuit 13 detects the overcurrent of the high-voltage power source 6 , the high-voltage power source 6 and high-frequency power source 4 are stopped, and the alarm can be given.
  • An object of the present invention is to provide a holding mechanism of an object to be processed, which can prevent a voltage drop in an electrode and can manage the life of the electrode.
  • the detection circuit for a detection circuit which has the function of detecting the stripped state of a protective film of an electrode from the direct-current component in a high-frequency power supply line and removing a residual charge, during plasma processing by a process condition under which abnormal electric discharge easily occurs, the detection circuit is electrically disconnected from a lower electrode so as to prevent abnormal electric discharge by the voltage drop of the lower electrode.
  • the detection circuit is electrically connected to the lower electrode in order to detect the stripped state (life) of the protective film of the electrode from the direct-current component in the plasma discharge, or to remove charges into the lower electrode or residual charges.
  • an overcurrent protection circuit stops output of the high-voltage power source and high-frequency power source.

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  • General Chemical & Material Sciences (AREA)
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  • Chemical Kinetics & Catalysis (AREA)
  • Mechanical Engineering (AREA)
  • Materials Engineering (AREA)
  • Drying Of Semiconductors (AREA)
  • Container, Conveyance, Adherence, Positioning, Of Wafer (AREA)

Abstract

According to the present invention, there is provided a holding mechanism of an object to be processed W, which comprises a relay switch to electrically disconnect a detection circuit having the function of detecting the stripped state of a protective film of a lower electrode and removing a residual charge from the direct-current component in a high-frequency power supply line from the power source supply line and which disconnects the detection circuit from the lower electrode in accordance with a process condition to prevent abnormal electric discharge and which electrically connects the detection circuit to the lower electrode to detect the stripped state (life) of the protective film of the lower electrode from the direct-current component in a plasma discharge or to remove a charge into the lower electrode or a residual charge during plasma processing under a process condition not causing abnormal electric discharge or at maintenance time.

Description

CROSS-REFERENCE TO RELATED APPLICATION
This application is a U.S. national phase application under 35 U.S.C. § 371 of International Application PCT/JP01/06420 (not published in English) filed Jul. 26, 2001.
TECHNICAL FIELD
The present invention relates to a holding mechanism of an object to be processed, which is mounted in a processing chamber of a plasma processing apparatus in order to hold the object to be processed.
BACKGROUND ART
In general, an electrostatic chuck using electrostatic adsorption is used in a holding mechanism of an object to be processed such as a semiconductor wafer in a plasma processing apparatus, and the electrostatically adsorbed object to be processed is subjected to a predetermined plasma process.
Examples of the holding mechanism of the object to be processed include two types including a type in which a high direct-current voltage is applied to an electrode plate disposed in the electrostatic chuck shown in FIG. 5, and a type in which the electrostatic chuck is held and a high direct-current voltage is applied to an electrode for generating plasma as shown in FIG. 6. For the sake of convenience, the former electrostatic chuck is referred to as a separated type, and the latter chuck is referred to as a coupled type.
As shown in FIG. 5, the separated type of holding mechanism of the object to be processed includes an electrostatic chuck 21 which electrostatically adsorbs the object to be processed (e.g., a semiconductor wafer), and a lower electrode 22 including aluminum whose surface is alumite-processed or coated with an insulating material such as ceramic. An upper electrode 23 is disposed above, parallel to, and opposite to the lower electrode 22 at a predetermined interval.
Moreover, the lower electrode 22 is connected to a high-frequency power source 25 via a matching circuit 24, high-frequency power is applied to the lower electrode 22 from the high-frequency power source 25, and plasma P is generated between the lower electrode 22 and upper electrode 23. This plasma P is collected onto a semiconductor wafer W via a focus ring 22 a disposed in an outer peripheral edge of the lower electrode 22, and the semiconductor wafer is subjected to a plasma processing such as etching.
The electrostatic chuck 21 is formed by insulating materials such as a polyimide-based resin and ceramics, and an electrode plate 21 a is disposed inside the chuck. The electrode plate 21 a is connected to a high-voltage power source 27 which applies a direct-current voltage via a filter circuit 26, the high-voltage power source 27 applies a high direct-current voltage to the electrode plate 21 a, and the semiconductor wafer is electrostatically adsorbed onto a front surface of the electrostatic chuck 21.
The filter circuit 26 includes, for example, a coil 26 a, resistor 26 b, and capacitor 26 c, filters a high-frequency current from the high-frequency power source 25, and prevents the high-frequency current from turning onto a high-voltage power source 27 side.
Moreover, the lower electrode 22 is connected to a detection circuit 28. This detection circuit 28 measures a direct-current (DC) component generated in the lower electrode 22 to which the high-frequency power is applied. For example, as shown in FIG. 5, the circuit includes a coil 28 a, resistor 28 b, and capacitor 28 c, and measures the direct-current component of a point A. At this measurement time, the circuit cuts the high-frequency current from the high-frequency power source 25, and prevents the high-frequency current from turning into the point A.
On the other hand, as shown in FIG. 6, the coupled type of holding mechanism of the object to be processed includes a constitution similar to that of the above-described separated type of holding mechanism of the object to be processed except that the lower electrode 22 also functions as the electrode plate of the electrostatic chuck 21. That is, the lower electrode 22 is connected to both the high-frequency power source 25 and high-voltage power source 27, and the high-frequency power source 25 applies the high-frequency power to the lower electrode 22 to generate the plasma P between the upper electrode 23 and lower electrode. Furthermore, the high-voltage power source 27 applies the high direct-current voltage to the lower electrode 22 to electrostatically charge the electrostatic chuck 21 and to electrostatically adsorb the semiconductor wafer.
Additionally, in addition to the function as the detection circuit of the direct-current component in the lower electrode 22 at the plasma processing time, the detection circuit 28 also has a function as a static eliminator circuit which eliminates charges remaining in capacitor components in the lower electrode 22 and matching circuit 24. For the separated type of holding mechanism of the object to be processed, a property as the static eliminator circuit is sometimes used to use the detection circuit 28 as life management means of the lower electrode 22.
That is, while the plasma processing is performed, the surface of the lower electrode 22 is sputtered, the alumite processing is scraped and stripped off, this stripped portion forms a closed circuit between the lower electrode 22 and upper electrode 23, and a current flows toward a detection circuit 28 side from the lower electrode 22.
When the current is measured by the detection circuit 28, the stripped degree (wear degree) of the lower electrode 22 by the sputtering can be grasped by the magnitude of the measured value, and further the life of the lower electrode 22 can be managed. The detection circuit 28 measures the direct-current component in the lower electrode 22, and the direct-current component is ideally in a 0V state at times other than times when the high-frequency power is turned ON/OFF or the high voltage is turned ON/OFF. Therefore, the current flowing through the lower electrode 22 at the plasma processing time can be grasped as the current which flows through the lower electrode 22 via the stripped alumite-processed portion. However, with the separated type of holding mechanism of the object to be processed shown in FIG. 5, depending on process conditions, while the semiconductor wafer is subjected to the plasma processing, for example, the detection circuit 28 functions as the static eliminator circuit, and a current i1 flows into the detection circuit 28 from the lower electrode 22. Therefore, a potential difference is generated between the lower electrode 22 and a focus ring 22 a by the voltage drop of the lower electrode 22, and there has been a problem that this potential difference causes abnormal electric discharge between the lower electrode 22 and components such as the focus ring 22 a.
To avoid this, when the detection circuit 28 is disconnected, the abnormal electric discharge at plasma processing time can be prevented, but there is a disadvantage that the charges remain in the lower electrode 22. Moreover, when refrigerant remains to be circulated in a refrigerant channel in the lower electrode 22 at maintenance time, static electricity is generated by friction of the refrigerant with the refrigerant channel, the lower electrode 22 is charged, and this causes a problem of electric shock.
Moreover, with the coupled type of holding mechanism of the object to be processed shown in FIG. 6, since a closed circuit is formed between the high-voltage power source 27 and detection circuit 28, as shown in the drawing, a current i2 constantly flows toward the detection circuit 28 from the high-voltage power source 27, the voltage applied to the lower electrode 22 from the high-voltage power source 27 drops, and there is a problem of deterioration of the electrostatic adsorption function of the electrostatic chuck 21. Furthermore, to avoid this, when the detection circuit 28 is disconnected, there is a problem of electrostatic charging in the lower electrode 22 in the same manner as in the separated type.
DISCLOSURE OF THE INVENTION
An object of the present invention is to provide a holding mechanism of an object to be processed, in which a voltage drop in an electrode can be prevented and the life of the electrode can be managed.
According to one aspect of the present invention, there is provided a holding mechanism of an object to be processed mounted on a plasma processing apparatus which applies high-frequency power from a high-frequency power source to one of two electrodes disposed opposite to each other to generate plasma discharge, thereby subjecting the object to be processed to a plasma processing, the mechanism comprising: an electrostatic chuck which is attached to the electrode connected to the high-frequency power source and which electrostatically adsorbs the object to be processed; a high-voltage power source which applies a direct-current voltage to the electrostatic chuck to generate an electrostatic adsorption force; a detection circuit to detect a direct-current component generated on the electrode, when the high-frequency power is applied to the electrode to subject the object to be processed to the predetermined plasma processing; and a changeover switch which can electrically disconnect the detection circuit from the electrode at processing time of the object to be processed and which can electrically connect the detection circuit to the electrode at detection time of the direct-current component or at non-processing time of the object to be processed.
According to a further aspect, there is provided a holding mechanism of an object to be processed mounted on a plasma processing apparatus which applies high-frequency power from a high-frequency power source to one of two electrodes disposed opposite to each other to generate plasma discharge, thereby subjecting the object to be processed to a plasma processing, the mechanism comprising: an electrostatic chuck which is attached to the electrode connected to the high-frequency power source and which electrostatically adsorbs the object to be processed; a high-voltage power source which applies a direct-current voltage to the electrode and which generates an electrostatic adsorption force in the electrostatic chuck; a detection circuit to detect a direct-current component generated on the electrode, when the high-frequency power is applied to the electrode to subject the object to be processed to the predetermined plasma processing; and a changeover switch which can electrically disconnect the detection circuit from the electrode at processing time of the object to be processed and which can electrically connect the detection circuit to the electrode at detection time of the direct-current component or at non-processing time of the object to be processed.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a diagram showing a constitution example of a separated type, according to a first embodiment of the present invention, of a holding mechanism of an object to be processed;
FIG. 2 is a diagram showing a constitution example of a coupled type, according to a second embodiment of the present invention, of the holding mechanism of the object to be processed;
FIGS. 3A, 3B, 3C are diagrams showing the relationship between the current of a high-voltage power source and the bias potential of a lower electrode in the coupled type of holding mechanism of the object to be processed shown in FIG. 2;
FIG. 4 is a diagram showing a modification example of the second embodiment shown in FIG. 2;
FIG. 5 is a constitution diagram showing one example of a related-art separated type of holding mechanism of the object to be processed; and
FIG. 6 is a constitution diagram showing one example of a related-art coupled type of holding mechanism of the object to be processed.
BEST MODE FOR CARRYING OUT THE INVENTION
Embodiments of the present invention will be described hereinafter in detail with reference to the drawings.
FIG. 1 is a diagram showing a constitution example of a separated type, according to a first embodiment of the present invention, of a holding mechanism of an object to be processed.
A holding mechanism 10 of the object to be processed includes: a lower electrode 2, disposed opposite to an upper electrode 7, for generating plasma; an electrostatic chuck 1 which is disposed on the lower electrode 2 to electrostatically adsorb a semiconductor wafer W; a high-voltage power source 6 which applies a direct-current voltage for generating an electrostatic adsorption force in the electrostatic chuck 1; a filter circuit 5 which prevents a high-frequency current from turning toward the high-voltage power source 6; and a detection circuit 8 which detects a direct-current component generated in the lower electrode 2 in subjecting the semiconductor wafer W to plasma process. The mechanism further includes: a high-frequency power source 4 which applies high-frequency power for generating the plasma; and a matching circuit 3 which obtains the matching property in the output of the high-frequency power source 4 and removes a reflected current from the lower electrode.
The lower electrode 2 is formed of aluminum whose surface is alumite-processed or coated with an insulating material such as ceramic forming a protective film, and includes a focus ring 9 in an outer peripheral edge. Moreover, the upper electrode 7 is disposed above the lower electrode 2, and the lower electrode 2 and upper electrode 7 are disposed parallel to each other at a predetermined interval in a processing chamber (not shown).
The electrostatic chuck 1 is comprised of a chuck main body portion 1 a formed of insulating materials such as a polyimide-based resin and ceramic, and an electrode plate 1 b to which a direct-current voltage is applied from the high-voltage power source 6. For the filter circuit 5, for example, a coil 5 a and resistor 5 b are connected in series between the high-voltage power source 6 and lower electrode 2, a grounded capacitor 5 c is connected to a connection point B, and the capacitor 5 c filters the high-frequency current from the high-frequency power source 4 and prevents the high-frequency current from turning toward the high-voltage power source 6.
The detection circuit 8 is comprised of a coil 8 a, relay switch 8 b, and resistors 8 c and 8 d connected in series between the lower electrode 2 and ground, and further a grounded capacitor 8 e is connected between the coil 8 a and relay switch 8 b. This relay switch 8 b is a constantly opened contact point, and a switch driving unit 10 switches on (conduction)/off (non-conduction) based on the instruction of a control unit (not shown) which controls the whole apparatus (not shown).
In this constitution, the high-voltage power source 6 applies a high voltage to the electrode plate 1 b via the filter circuit 5. In a state in which the semiconductor wafer W is electrostatically adsorbed by the electrostatic chuck 1, a predetermined process gas is supplied into the processing chamber from a gas supply system (not shown) to hold a predetermined vacuum degree. The high-frequency power source 4 applies high-frequency power to the lower electrode 2 via the matching circuit 3 and generates plasma between the lower electrode 2 and upper electrode 7, so that the semiconductor wafer W is subjected to the predetermined plasma processing.
Moreover, during the plasma processing by a process condition under which abnormal electric discharge easily occurs between the lower electrode 2 and components such as the focus ring 9, the relay switch 8 b is brought into an open state (non-conducting state), and the flow of direct current into the detection circuit 8 is cut off. Furthermore, at stop time of the plasma processing, or maintenance time of the plasma processing apparatus, the detection circuit 8 is brought into a closed state (conducting state), and the current is allowed to flow into the detection circuit 8.
When the plasma processing is performed under a process condition easily causing the abnormal electric discharge in this manner, the relay switch 8 b of the detection circuit 8 is opened. Therefore, the detection circuit 8 is electrically disconnected from the lower electrode 2 to cut off an input, voltage drop of the lower electrode 2 is prevented, and the abnormal electric discharge between the lower electrode 2 and the components such as the focus ring 9 can be prevented. Moreover, when the stripped degree of the alumite processing of the lower electrode 2 is to be detected during plasma processing not easily causing abnormal electric discharge, the relay switch 8 b is closed, and the detection circuit 8 is electrically connected to the lower electrode 2.
If the lower electrode 2 is sputtered and a part of the alumite processing is scraped off, a closed circuit is formed between the stripped alumite-processed portion of the lower electrode 2 and the upper electrode 7, a current i3 flows into the detection circuit 8 from the lower electrode 2, and a voltage value can be detected at a measurement point A.
The stripped degree of the alumite-processed portion of the lower electrode 2 is grasped in accordance with the degree of increase of the voltage value, and further the life of the lower electrode 2 can be grasped and managed. Moreover, at maintenance time of the plasma processing apparatus, the relay switch 8 b is closed to connect the detection circuit 8 to the lower electrode 2, and the detection circuit 8 is allowed to function as a static eliminator circuit. Thereby, when refrigerant is circulated in the lower electrode 2 at maintenance time, and even when static electricity is generated in the lower electrode 2, the static electricity can be eliminated by the static eliminator circuit without electrostatically charging the electrode.
A constitution example of a coupled type of holding mechanism of the object to be processed according to a second embodiment will next be described with reference to FIGS. 2 and 4. Here, parts of the present embodiment equivalent to constituting parts shown in FIG. 1 are denoted with the same reference numerals, and description thereof is omitted. The above-described first embodiment includes the constitution in which the electrode plate 1 b is disposed in the chuck main body 1 a and the direct-current voltage is applied from the high-voltage power source 6, but the holding mechanism 20 of the object to be processed of the present embodiment includes a constitution in which the electrode plate 1 b is not disposed and the lower electrode 2 is used as the electrode plate 1 b.
The holding mechanism 20 of the object to be processed shown in FIG. 2 includes: the lower electrode 2, disposed opposite to the upper electrode 7, for generating the plasma; an electrostatic chuck 11 which is disposed on the lower electrode 2 to electrostatically adsorb the semiconductor wafer W; the high-voltage power source 6 which applies the direct-current voltage to the lower electrode 2 to generate the electrostatic adsorption force in the electrostatic chuck 11; the filter circuit 5 which prevents the high-frequency current from turning toward the high-voltage power source 6; and the detection circuit 8 which detects the direct-current component generated in the lower electrode 2 in subjecting the semiconductor wafer W to the plasma processing. The mechanism further includes: the high-frequency power source 4 which applies the high-frequency power for generating the plasma; and the matching circuit 3 which obtains the matching property in the output of the high-frequency power source 4 and removes the reflected current from the lower electrode.
The above-described electrostatic chuck 11 is formed of insulating materials such as polyimide-based resin or ceramic. The chuck is different from the electrostatic chuck 1 of the above-described first embodiment in that an electrode plate is not disposed. Therefore, the chuck is disposed on the lower electrode 2 as the electrode plate, and the direct-current voltage is applied from the high-voltage power source 6 via the lower electrode.
A detection circuit 12 for use in the present embodiment includes substantially the same constitution as that of the detection circuit 8 of the above-described first embodiment, and is comprised of a coil 12 a, relay switch 12 b, and resistors 12 c and 12 d connected in series between the lower electrode 2 and ground, and further a grounded capacitor 12 e is connected between the coil 12 a and relay switch 12 b. This relay switch 12 b is a constantly opened contact point, and the switch driving unit 10 switches on (conduction)/off (non-conduction) based on the instruction of the control unit (not shown) which controls the whole apparatus (not shown).
The constitution is equal in this manner, but there is a different respect concerning function/effect.
First, as a common respect, at maintenance time, the relay switch 12 b is closed, the detection circuit 12 is connected to the lower electrode 2, the detection circuit 12 is used as a static eliminator circuit, and charging in the lower electrode 2 can be prevented.
Different respects will be described.
In the present embodiment, at plasma processing time, the relay switch 12 b is opened, the connection of the detection circuit 12 and lower electrode 2 is canceled, the connection of the detection circuit 12 and high-voltage power source 6 is also canceled, and the function of the static eliminator circuit is stopped. This prevents the high voltage in the lower electrode 2 from dropping and can maintain the electrostatic adsorption function of the electrostatic chuck 11.
Additionally, to allow the detection circuit 12 to function as a life manager of the lower electrode 2, when the detection circuit 12 is connected to the lower electrode 2 via the relay switch 12 b, as described also in the related art, the detection circuit 12 and high-voltage power source 6 form a closed circuit, a high output voltage from the high-voltage power source 6 is measured instead of measuring the direct-current component of the lower electrode 2, and this constitution cannot be used as a life manager of the lower electrode 2 as such. The present inventors have found that the current of the high-voltage power source 6 is closely associated with the bias potential Vdc of the lower electrode 2.
For example, as shown in FIGS. 3(a), (b), (c), the current HV[A] of the high-voltage power source 6 and bias potential Vdc of the lower electrode 2 change in synchronization with each other. It is further found that in synchronization with the application to the high-voltage power source 6 or high-frequency power source 4, the high-voltage current HV[A] and bias potential Vdc change.
Therefore, the lower electrode 2 and upper electrode 7 form a closed circuit via the stripped alumite-processed portion of the lower electrode 2, a current i4 flows into the high-voltage power source 6 from the lower electrode 2 as shown in FIG. 2, and the current HV[A] of the high-voltage power source 6 then changes. Therefore, in the second embodiment, the detection circuit 12 monitors the current HV[A] of the high-voltage power source 6 so that the current flowing through the stripped alumite-processed portion is indirectly grasped, and the life of the lower electrode 2 can be grasped and managed in accordance with the magnitude of the current.
Moreover, in the separated type of holding mechanism shown in FIG. 1, to manage the life of the lower electrode 2 when processing is performed under the process condition easily causing abnormal electric discharge, this current HV[A] can be monitored.
On the other hand, if the lower electrode 2 and upper electrode 7 form a closed circuit via the stripped alumite-processed portion of the lower electrode 2, then a voltage drop of the high voltage applied to the lower electrode 2 is caused, and there is also a possibility that the electrostatic chuck 11 does not function. Additionally, when the alumite-processed portion is stripped, there is a possibility of direct-current discharge caused by the high voltage applied to the lower electrode 2.
To solve the problem, as shown in FIG. 4, an overcurrent protection circuit 13 is disposed in a power source line of the high-voltage power source 6. This overcurrent protection circuit 13 stops the output of the high-voltage power source 6 when a predetermined or greater overcurrent is generated by the direct-current discharge. A measurement circuit which measures the overcurrent is incorporated in the high-voltage power source 6. Of course, the circuit may also be disposed outside. Furthermore, an alarm is given based on an overcurrent detection signal in the overcurrent protection circuit 13, and the output of the high-frequency power source 4 is stopped.
Therefore, when plasma processing is performed, the relay switch 12 b of the detection circuit 12 is brought into an open state. Since the detection circuit 12 is not connected to the lower electrode 2, the high voltage of the lower electrode 2 is prevented from dropping, and the semiconductor wafer W can be prevented from being stripped from the electrostatic chuck 11.
Moreover, abnormal electric discharge between the lower electrode 2 and components such as the focus ring 9 can be prevented. When the stripped degree (life) of the alumite processing of the lower electrode 2 is to be grasped, the relay switch 12 b is closed, and the detection circuit 12 is connected to the lower electrode 2.
At this time, if the lower electrode 2 is sputtered, and a part of the alumite processing is scraped off, a closed circuit is formed between the lower electrode 2 and upper electrode 7, and the current HV[A] of the high-voltage power source 6 is monitored. The current HV[A] is measured at the measurement point A, the life of the lower electrode 2 is grasped in accordance with the magnitude of this current HV[A], and further the life of the lower electrode 2 can be grasped and managed.
Moreover, at maintenance time of the plasma processing apparatus, the relay switch 12 b is closed to connect the detection circuit 12 to the lower electrode 2, and the detection circuit 12 is allowed to function as a static eliminator circuit. Thereby, even when refrigerant is circulated in the lower electrode 2 at maintenance time, and static electricity is generated in the lower electrode 2, the static eliminator circuit can eliminate the static electricity. Moreover, even when a direct-current discharge is caused by the high voltage of the lower electrode 2 in the stripped alumite-processed portion of the lower electrode 2, the overcurrent protection circuit 13 detects the overcurrent of the high-voltage power source 6 and stops the driving of the high-voltage power source 6 and high-frequency power source 4, and the alarm can be given.
According to the above-described first and second embodiments, the relay switch 12 b is disposed to electrically disconnect the detection circuits 8, 12 from the lower electrode 2 during a treatment in which abnormal electric discharge easily occurs and, on the other hand, to electrically connect the detection circuits 8, 12 to the lower electrode 2, when a direct-current component is detected and the semiconductor wafer W is not treated. Therefore, the following function/effect can be produced/obtained.
(1) Effect of First Embodiment
In the separated type of holding mechanism 10 of the object to be processed, when the plasma processing is performed under the process condition easily causing abnormal electric discharge, the relay switch 8 b of the detection circuit 8 is opened, and the detection circuit 8 is electrically disconnected from the lower electrode 2. Therefore, voltage drop of the lower electrode 2 is prevented, and abnormal electric discharge between the lower electrode 2 and components such as the focus ring 9 can be prevented.
Moreover, when the stripped degree of the alumite processing of the lower electrode 2 is to be grasped during the plasma processing under the process condition not causing abnormal electric discharge, the relay switch 8 b is closed, and the detection circuit 8 is electrically connected to the lower electrode 2. Therefore, the stripped degree of the alumite-processed portion of the lower electrode 2 is grasped in accordance with the magnitude of the voltage value at the measurement point A, and further the life of the lower electrode 2 can be grasped and managed. Moreover, life management of the lower electrode 2 under the process condition under which abnormal electric discharge easily occurs can be performed by monitoring the current HV[A] of the direct-current high-voltage power source 6. Furthermore, in maintenance of the plasma processing apparatus, the relay switch 8 b is closed to electrically connect the detection circuit 8 to the lower electrode 2, and the detection circuit 8 can be used as a static eliminator circuit. Therefore, charging in the lower electrode 2 at maintenance time is prevented, and an operator's short-circuit trouble can be prevented.
(2) Effect of Second Embodiment
In the coupled type of holding mechanism 20 of the object to be processed, when the plasma processing is performed, the relay switch 12 b of the detection circuit 12 opens, the detection circuit 12 is electrically disconnected from the lower electrode 2, and the voltage drop of the high voltage of the lower electrode 2 is prevented. The semiconductor wafer W can be prevented from being stripped from the electrostatic chuck 11, and further abnormal electric discharge between the lower electrode 2 and components such as the focus ring 9 can be prevented.
Moreover, to know the stripped degree of the alumite processing of the lower electrode 2 during the plasma processing, the current HV[A] of the high-voltage power source 6 is monitored to grasp the life of the lower electrode 2, and further the life of the lower electrode 2 can be grasped and managed. At maintenance time of the plasma processing apparatus, the relay switch 12 b is closed to electrically connect the detection circuit 12 to lower electrode 2, the detection circuit 12 can be allowed to function as a static eliminator circuit, and charging in the lower electrode 2 can be prevented.
Moreover, according to the present embodiment, the overcurrent protection circuit 13 is disposed in the high-voltage power source 6 of the separated type of holding mechanism 20 of the object to be processed. Therefore, even when the direct-current discharge occurs because of the high voltage of the lower electrode 2 in the stripped alumite-processed portion of the lower electrode 2, the overcurrent protection circuit 13 detects the overcurrent of the high-voltage power source 6, the high-voltage power source 6 and high-frequency power source 4 are stopped, and the alarm can be given.
It is to be noted that the present invention is not limited to the above-described respective embodiments, and design of each constituting element can appropriately be changed as needed.
INDUSTRIAL APPLICABILITY
An object of the present invention is to provide a holding mechanism of an object to be processed, which can prevent a voltage drop in an electrode and can manage the life of the electrode.
According to the present invention, for a detection circuit which has the function of detecting the stripped state of a protective film of an electrode from the direct-current component in a high-frequency power supply line and removing a residual charge, during plasma processing by a process condition under which abnormal electric discharge easily occurs, the detection circuit is electrically disconnected from a lower electrode so as to prevent abnormal electric discharge by the voltage drop of the lower electrode. During plasma processing by a process condition under which the abnormal electric discharge is not caused or at maintenance time, the detection circuit is electrically connected to the lower electrode in order to detect the stripped state (life) of the protective film of the electrode from the direct-current component in the plasma discharge, or to remove charges into the lower electrode or residual charges. Further, in the holding mechanism of the object to be processed, when overcurrent by direct-current discharge is generated from the lower electrode, and flows into a line of a high-voltage power source for generating an electrostatic adsorption force in an electrostatic chuck, an overcurrent protection circuit stops output of the high-voltage power source and high-frequency power source.

Claims (6)

1. A holding mechanism of an object to be processed mounted on a plasma processing apparatus which applies high-frequency power from a high-frequency power source to one of two electrodes disposed opposite to each other to generate plasma discharge, thereby subjecting the object to be processed to a plasma processing, the mechanism comprising:
an electrostatic chuck which is attached to the electrode connected to the high-frequency power source and which electrostatically adsorbs the object to be processed;
a high-voltage power source which applies a direct-current voltage to the electrostatic chuck to generate an electrostatic adsorption force;
a detection circuit to detect a direct-current component generated on the electrode, when the high-frequency power is applied to the electrode to subject the object to be processed to the predetermined plasma processing; and
a changeover switch which can electrically disconnect the detection circuit from the electrode at a processing time of the object to be processed and which can electrically connect the detection circuit to the electrode at a detection time of the direct-current component or at a non-processing time of the object to be processed.
2. A holding mechanism according to claim 1, wherein the changeover switch comprises a switch driving unit to electrically disconnect the detection circuit from the electrode, when the plasma processing is performed under a process condition easily causing abnormal electric discharge, and
to electrically connect the detection circuit to the electrode and start a detection operation of the detection circuit, when a stripped degree of a protective film of the lower electrode is detected during the plasma processing under a process condition not causing the abnormal electric discharge.
3. A holding mechanism according to claim 1, wherein the changeover switch comprises a switch driving unit to electrically connect the detection circuit to the electrode in a state in which the plasma is not generated and to pass a charge supplied to the electrode to ground.
4. A holding mechanism according to claim 1, wherein the electrostatic chuck comprises: a chuck main body portion formed of insulating materials which a polyimide-based resin or ceramic; and an electrode plate disposed in the chuck main body portion, and
the object to be processed is held by an electrostatic adsorption force generated when the high-voltage power source applies the direct-current voltage to the electrode plate.
5. A holding mechanism of an object to be processed mounted on a plasma processing apparatus which applies high-frequency power from a high-frequency power source to one of two electrodes disposed opposite to each other to generate plasma discharge, thereby subjecting the object to be processed to a plasma processing, the mechanism comprising:
an electrostatic chuck which is attached to the electrode connected to the high-frequency power source and which electrostatically adsorbs the object to be processed;
a high-voltage power source which applies a direct-current voltage to the electrode and which generates an electrostatic adsorption force in the electrostatic chuck;
a detection circuit to detect a direct-current component generated on the electrode, when the high-frequency power is applied to the electrode to subject the object to be processed to the predetermined plasma processing; and
a changeover switch which can electrically disconnect the detection circuit from the electrode at a processing time of the object to be processed and which can electrically connect the detection circuit to the electrode at a detection time of the direct-current component or at a non-processing time of the object to be processed.
6. A holding mechanism of the object to be processed according to claim 5, further comprising:
a measurement circuit which measures an overcurrent by direct-current discharge into the high-voltage power source from the electrode; and
an overcurrent protection circuit to stop output of the high-voltage power source and high-frequency power source and to give an alarm, when a predetermined or greater overcurrent is measured.
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Cited By (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040178788A1 (en) * 2002-01-23 2004-09-16 Tokyo Electron Limited Charge eliminating mechanism for stage and testing apparatus
US20050142873A1 (en) * 2002-08-30 2005-06-30 Tokyo Electron Limited Plasma processing method and plasma processing apparatus
US20050162805A1 (en) * 2000-07-26 2005-07-28 Tokyo Electron Limited Holding mechanism of object to be processed
US20070215282A1 (en) * 2006-03-15 2007-09-20 Hitachi High-Technologies Corporation Plasma processing apparatus
US20070227667A1 (en) * 2006-03-29 2007-10-04 Tokyo Electron Limited Plasma processing apparatus and method of measuring amount of radio-frequency current in plasma
US20070227657A1 (en) * 2006-03-29 2007-10-04 Tokyo Electron Limited Plasma processing apparatus
US20070235135A1 (en) * 2006-04-07 2007-10-11 Hitachi High-Technologies Corporation Plasma processing apparatus
US20090061074A1 (en) * 2005-05-20 2009-03-05 Asm Japan K.K. Technology of detecting abnormal operation of plasma process
US20100078899A1 (en) * 2008-09-26 2010-04-01 Lam Research Corporation Adjustable thermal contact between an electrostatic chuck and a hot edge ring by clocking a coupling ring
US9279758B2 (en) 2007-09-04 2016-03-08 Lam Research Corporation Method and apparatus for diagnosing status of parts in real time in plasma processing equipment
CN110770880A (en) * 2018-05-28 2020-02-07 株式会社日立高新技术 Plasma processing apparatus

Families Citing this family (42)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2001316818A (en) * 2000-02-29 2001-11-16 Canon Inc Method and apparatus for forming film, silicon-based film, electromotive force element and solar battery therewith, and sensor and imaging element
JP4115155B2 (en) 2002-04-11 2008-07-09 東京エレクトロン株式会社 Method for suppressing charging of parts in vacuum processing chamber of plasma processing apparatus
US7821767B2 (en) * 2004-11-04 2010-10-26 Ulvac, Inc. Electrostatic chuck device
JP4865352B2 (en) * 2006-02-17 2012-02-01 三菱重工業株式会社 Plasma processing apparatus and plasma processing method
JP5107597B2 (en) * 2006-03-29 2012-12-26 東京エレクトロン株式会社 Plasma processing equipment
KR100804787B1 (en) * 2006-06-05 2008-02-20 주식회사 뉴파워 프라즈마 Plasma processing apparatus having active bias control circuit and control method of the same
KR100788956B1 (en) * 2006-06-09 2007-12-27 에이피티씨 주식회사 Plasma process apparatus having electrostatic chuck
DE202006020568U1 (en) * 2006-06-30 2008-12-24 Hüttinger Elektronik Gmbh + Co. Kg Plasma process system with an electrostatic sample holding device
KR101394337B1 (en) * 2006-08-30 2014-05-13 엘아이지에이디피 주식회사 Electrostratic Chuck
US7884925B2 (en) * 2008-05-23 2011-02-08 Lam Research Corporation Electrical and optical system and methods for monitoring erosion of electrostatic chuck edge bead materials
JP5203986B2 (en) * 2009-01-19 2013-06-05 東京エレクトロン株式会社 Focus ring heating method, plasma etching method, plasma etching apparatus and computer storage medium
EP2390906A1 (en) * 2010-05-26 2011-11-30 Applied Materials, Inc. Apparatus and method for electrostatic discharge (ESD) reduction
CN102986305B (en) 2010-07-16 2016-01-20 海别得公司 Event of failure in plasma arc spray gun detects
US9761883B2 (en) 2011-11-03 2017-09-12 Johnson Controls Technology Company Battery grid with varied corrosion resistance
CN103811261B (en) * 2012-11-13 2016-08-24 中微半导体设备(上海)有限公司 Reduce the structure of wafer leakage current and the plasma processing chamber of this structure is set
KR102498784B1 (en) * 2014-12-11 2023-02-09 어플라이드 머티어리얼스, 인코포레이티드 Electrostatic chuck for high temperature rf applications
JP6496579B2 (en) * 2015-03-17 2019-04-03 東京エレクトロン株式会社 Substrate processing method and substrate processing apparatus
US9754769B2 (en) * 2015-09-15 2017-09-05 Lam Research Corporation Metrology methods to detect plasma in wafer cavity and use of the metrology for station-to-station and tool-to-tool matching
US10435789B2 (en) * 2016-12-06 2019-10-08 Asm Ip Holding B.V. Substrate treatment apparatus
US10714372B2 (en) 2017-09-20 2020-07-14 Applied Materials, Inc. System for coupling a voltage to portions of a substrate
US10555412B2 (en) 2018-05-10 2020-02-04 Applied Materials, Inc. Method of controlling ion energy distribution using a pulse generator with a current-return output stage
US11476145B2 (en) 2018-11-20 2022-10-18 Applied Materials, Inc. Automatic ESC bias compensation when using pulsed DC bias
WO2020154310A1 (en) 2019-01-22 2020-07-30 Applied Materials, Inc. Feedback loop for controlling a pulsed voltage waveform
US11508554B2 (en) 2019-01-24 2022-11-22 Applied Materials, Inc. High voltage filter assembly
JP7386683B2 (en) * 2019-12-02 2023-11-27 東京エレクトロン株式会社 Plasma processing equipment and electrode consumption measuring method
JP7466432B2 (en) 2020-03-24 2024-04-12 東京エレクトロン株式会社 Plasma processing apparatus and method for measuring consumption amount
US11462389B2 (en) 2020-07-31 2022-10-04 Applied Materials, Inc. Pulsed-voltage hardware assembly for use in a plasma processing system
US11901157B2 (en) 2020-11-16 2024-02-13 Applied Materials, Inc. Apparatus and methods for controlling ion energy distribution
US11798790B2 (en) 2020-11-16 2023-10-24 Applied Materials, Inc. Apparatus and methods for controlling ion energy distribution
US11495470B1 (en) 2021-04-16 2022-11-08 Applied Materials, Inc. Method of enhancing etching selectivity using a pulsed plasma
US11791138B2 (en) 2021-05-12 2023-10-17 Applied Materials, Inc. Automatic electrostatic chuck bias compensation during plasma processing
US11948780B2 (en) 2021-05-12 2024-04-02 Applied Materials, Inc. Automatic electrostatic chuck bias compensation during plasma processing
US11967483B2 (en) 2021-06-02 2024-04-23 Applied Materials, Inc. Plasma excitation with ion energy control
US20220399185A1 (en) 2021-06-09 2022-12-15 Applied Materials, Inc. Plasma chamber and chamber component cleaning methods
US11810760B2 (en) 2021-06-16 2023-11-07 Applied Materials, Inc. Apparatus and method of ion current compensation
US11569066B2 (en) 2021-06-23 2023-01-31 Applied Materials, Inc. Pulsed voltage source for plasma processing applications
US11776788B2 (en) 2021-06-28 2023-10-03 Applied Materials, Inc. Pulsed voltage boost for substrate processing
US11476090B1 (en) 2021-08-24 2022-10-18 Applied Materials, Inc. Voltage pulse time-domain multiplexing
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US11694876B2 (en) 2021-12-08 2023-07-04 Applied Materials, Inc. Apparatus and method for delivering a plurality of waveform signals during plasma processing
US11972924B2 (en) 2022-06-08 2024-04-30 Applied Materials, Inc. Pulsed voltage source for plasma processing applications
US12111341B2 (en) 2022-10-05 2024-10-08 Applied Materials, Inc. In-situ electric field detection method and apparatus

Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5433813A (en) 1992-11-12 1995-07-18 Canon Kabushiki Kaisha Semiconductor device manufacturing apparatus
US5557215A (en) * 1993-05-12 1996-09-17 Tokyo Electron Limited Self-bias measuring method, apparatus thereof and electrostatic chucking apparatus
US5699223A (en) * 1994-04-27 1997-12-16 Anelva Corporation Method of removing substrate and apparatus for controlling applied voltage
US5882492A (en) * 1996-06-21 1999-03-16 Sierra Applied Sciences, Inc. A.C. plasma processing system
JP2000092877A (en) 1998-09-08 2000-03-31 Ulvac Japan Ltd Vacuum processor and vacuum processing method
US6214162B1 (en) * 1996-09-27 2001-04-10 Tokyo Electron Limited Plasma processing apparatus
US6273023B1 (en) * 1998-07-28 2001-08-14 Mitsubishi Denki Kabushiki Kaisha Plasma processing apparatus capable of reliably, electrostatically attracting and holding and thus fixing semiconductor wafer
JP2002043402A (en) * 2000-07-26 2002-02-08 Tokyo Electron Ltd Mechanism for mounting work to be processed
US6431115B2 (en) * 1994-03-25 2002-08-13 Tokyo Electron Limited Plasma treatment method and apparatus
US6771481B2 (en) * 2000-12-28 2004-08-03 Hitachi, Ltd. Plasma processing apparatus for processing semiconductor wafer using plasma

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR100290748B1 (en) * 1993-01-29 2001-06-01 히가시 데쓰로 Plasma processing apparatus
US5822171A (en) * 1994-02-22 1998-10-13 Applied Materials, Inc. Electrostatic chuck with improved erosion resistance
US5459632A (en) * 1994-03-07 1995-10-17 Applied Materials, Inc. Releasing a workpiece from an electrostatic chuck
US5708556A (en) * 1995-07-10 1998-01-13 Watkins Johnson Company Electrostatic chuck assembly
US5886865A (en) * 1998-03-17 1999-03-23 Applied Materials, Inc. Method and apparatus for predicting failure of an eletrostatic chuck
KR100368116B1 (en) * 2000-08-07 2003-01-15 삼성전자 주식회사 Electro Stack Chuck power automatic discharge apparatus of semiconductor facilities
JP3977114B2 (en) * 2002-03-25 2007-09-19 株式会社ルネサステクノロジ Plasma processing equipment

Patent Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5433813A (en) 1992-11-12 1995-07-18 Canon Kabushiki Kaisha Semiconductor device manufacturing apparatus
US5557215A (en) * 1993-05-12 1996-09-17 Tokyo Electron Limited Self-bias measuring method, apparatus thereof and electrostatic chucking apparatus
US6431115B2 (en) * 1994-03-25 2002-08-13 Tokyo Electron Limited Plasma treatment method and apparatus
US5699223A (en) * 1994-04-27 1997-12-16 Anelva Corporation Method of removing substrate and apparatus for controlling applied voltage
US5882492A (en) * 1996-06-21 1999-03-16 Sierra Applied Sciences, Inc. A.C. plasma processing system
US6214162B1 (en) * 1996-09-27 2001-04-10 Tokyo Electron Limited Plasma processing apparatus
US6273023B1 (en) * 1998-07-28 2001-08-14 Mitsubishi Denki Kabushiki Kaisha Plasma processing apparatus capable of reliably, electrostatically attracting and holding and thus fixing semiconductor wafer
JP2000092877A (en) 1998-09-08 2000-03-31 Ulvac Japan Ltd Vacuum processor and vacuum processing method
JP2002043402A (en) * 2000-07-26 2002-02-08 Tokyo Electron Ltd Mechanism for mounting work to be processed
US20030145950A1 (en) * 2000-07-26 2003-08-07 Eiji Hirose Workpiece holding mechanism
US6771481B2 (en) * 2000-12-28 2004-08-03 Hitachi, Ltd. Plasma processing apparatus for processing semiconductor wafer using plasma

Cited By (28)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050162805A1 (en) * 2000-07-26 2005-07-28 Tokyo Electron Limited Holding mechanism of object to be processed
US7265963B2 (en) * 2000-07-26 2007-09-04 Tokyo Electron Limited Holding mechanism of object to be processed
US7336471B2 (en) * 2002-01-23 2008-02-26 Tokyo Electron Limited Charge eliminating mechanism for stage and testing apparatus
US20040178788A1 (en) * 2002-01-23 2004-09-16 Tokyo Electron Limited Charge eliminating mechanism for stage and testing apparatus
US8287750B2 (en) 2002-08-30 2012-10-16 Tokyo Electron Limited Plasma processing method and plasma processing apparatus
US7799238B2 (en) 2002-08-30 2010-09-21 Tokyo Electron Limited Plasma processing method and plasma processing apparatus
US20050142873A1 (en) * 2002-08-30 2005-06-30 Tokyo Electron Limited Plasma processing method and plasma processing apparatus
US20100112819A1 (en) * 2002-08-30 2010-05-06 Tokyo Electron Limited Plasma processing method and plasma processing apparatus
US20090212017A1 (en) * 2002-08-30 2009-08-27 Tokyo Electron Limited Plasma processing method and plasma processing apparatus
US7541283B2 (en) * 2002-08-30 2009-06-02 Tokyo Electron Limited Plasma processing method and plasma processing apparatus
US20090061074A1 (en) * 2005-05-20 2009-03-05 Asm Japan K.K. Technology of detecting abnormal operation of plasma process
US8282767B2 (en) 2006-03-15 2012-10-09 Hitachi High-Technologies Corporation Plasma processing apparatus
US20070215282A1 (en) * 2006-03-15 2007-09-20 Hitachi High-Technologies Corporation Plasma processing apparatus
US20100282414A1 (en) * 2006-03-15 2010-11-11 Hitachi High-Technologies Corp. Plasma processing apparatus
US7931776B2 (en) * 2006-03-15 2011-04-26 Hitachi High-Technologies Corporation Plasma processing apparatus
US20110139370A1 (en) * 2006-03-15 2011-06-16 Hitachi High-Technologies Corporation Plasma processing apparatus
US7655110B2 (en) 2006-03-29 2010-02-02 Tokyo Electron Limited Plasma processing apparatus
US20070227657A1 (en) * 2006-03-29 2007-10-04 Tokyo Electron Limited Plasma processing apparatus
US20070227667A1 (en) * 2006-03-29 2007-10-04 Tokyo Electron Limited Plasma processing apparatus and method of measuring amount of radio-frequency current in plasma
US7993487B2 (en) 2006-03-29 2011-08-09 Tokyo Electron Limited Plasma processing apparatus and method of measuring amount of radio-frequency current in plasma
US20070235135A1 (en) * 2006-04-07 2007-10-11 Hitachi High-Technologies Corporation Plasma processing apparatus
US9279758B2 (en) 2007-09-04 2016-03-08 Lam Research Corporation Method and apparatus for diagnosing status of parts in real time in plasma processing equipment
US9541514B2 (en) 2007-09-04 2017-01-10 I Am Research Corporation Method and apparatus for diagnosing status of parts in real time in plasma processing equipment
US20100078899A1 (en) * 2008-09-26 2010-04-01 Lam Research Corporation Adjustable thermal contact between an electrostatic chuck and a hot edge ring by clocking a coupling ring
US8454027B2 (en) * 2008-09-26 2013-06-04 Lam Research Corporation Adjustable thermal contact between an electrostatic chuck and a hot edge ring by clocking a coupling ring
CN110770880A (en) * 2018-05-28 2020-02-07 株式会社日立高新技术 Plasma processing apparatus
US11424106B2 (en) * 2018-05-28 2022-08-23 Hitachi High-Tech Corporation Plasma processing apparatus
CN110770880B (en) * 2018-05-28 2023-12-29 株式会社日立高新技术 Plasma processing apparatus

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US20050162805A1 (en) 2005-07-28
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